SWITCHED RELUCTANCE MACHINE HAVING A SWITCH FOR CHANGING THE NUMBER OF TURNS
20220302864 ยท 2022-09-22
Inventors
Cpc classification
H02P25/188
ELECTRICITY
International classification
Abstract
A switched reluctance motor includes a ferromagnetic rotor, a stator with stator poles each including a winding with at least one winding strand, and at least two winding strands of a stator pole or at least two winding strands on diametrically opposite stator poles being assigned to a motor phase, the at least two winding strands being between a first supply line connected to a DC voltage source and a second supply line connected to an earth connection, and each winding strand being assigned an upper electronic switch and a lower electronic switch each including a freewheeling diode arranged in parallel. The motor further includes a controller to control the electronic switches of the circuits as a function of the position of the rotor.
Claims
1-11. (canceled)
12. A switched reluctance motor, comprising: a ferromagnetic rotor; a stator with stator poles each including a winding with two winding strands of a stator pole or two winding strands arranged on diametrically opposed stator poles being assigned to one motor phase; a first supply line connected to a DC voltage source and a second supply line connected to a ground terminal, the two winding strands being between the first supply line and the second supply line; first through fourth electronic switches, including an upper electronic switch and a lower electronic switch assigned to one of the two winding strands, each with a freewheeling diode arranged in parallel; a controller to control the first through fourth electronic switches depending on a position of the rotor, the two winding strands of a motor phase being connected in a common switching circuit via a cross branch in such a way, that the two winding strands of a motor phase are switchable between a parallel circuit and series circuit by the control of the electronic switches; and the two winding strands of the motor phase are connected asymmetrically.
13. The switched reluctance motor according to claim 12, wherein the controller is configured or programmed to effect a switchover from series connection to parallel connection after a predetermined speed of the reluctance motor has been reached.
14. The switched reluctance motor according to claim 12, wherein the two winding strands of the motor phase define a winding strand pair, one of the winding strands of the winding strand pair being arranged in an asymmetrical half bridge including the first and second electronic switches and two of the freewheeling diodes and, parallel to the arrangement, a symmetrical half-bridge in which the third and fourth electronic switches are arranged in series between the first and second supply lines; the third and fourth electronic switches are connected to corresponding ones of the freewheeling diodes via a center tap in each case between the third and fourth electronic switches and the corresponding ones of the freewheeling diodes; and two nodes between the first and second electronic switches and other corresponding ones of the two freewheeling diodes are in turn connected to a third node which is between the fourth electronic switch and a first winding strand of two winding strands via the cross branch, a second winding strand of the two winding strands being arranged in the cross branch.
15. A method of controlling a circuit of a motor phase of a switched reluctance motor, the switched reluctance including a ferromagnetic rotor, a stator with stator poles including a winding and two winding strands of a stator pole or two winding strands on diametrically opposed stator poles being associated with a motor phase, the two winding strands being between a first supply line connected to a DC voltage source and a second supply line connected to an earth connection, first through fourth electronic switches, including an upper electronic switch and a lower electronic switch assigned to one of the two winding strands, each with a freewheeling diode arranged in parallel, and a controller to control the first through fourth electronic switches of the circuits depending on a position of the rotor, the two winding strands being connected together in a common circuit via a cross branch and the two winding strands defining a winding strand pair, one of the winding strands of a winding pair being arranged in an asymmetrical half-bridge including the first and second electronic switches and two of the freewheeling diodes and, parallel to the arrangement, a symmetrical half-bridge in which the third and fourth electronic switches are arranged in series between the first and second supply lines, the third and fourth electronic switches are connected to corresponding ones of the freewheeling diodes via a center tap in each case between the third and fourth electronic switches and the corresponding ones of the freewheeling diodes, and two nodes between the first and second electronic switches and other corresponding ones of the two freewheeling diodes are connected to a third node which is between the fourth electronic switch and a first winding strand of two winding strands via the cross branch, a second winding strand of the two winding strands being arranged in the cross branch, and the method comprising: operating the circuit in a series connection of the two winding strands of the motor phase, such that the third electronic switch of the first winding strand and the second electronic switch are switched on and the first and the fourth electronic switches are switched off and the current flows via the third electronic switch into the first winding strand and then via the cross branch, the second winding strand, and the fourth electronic switch so that the winding current of both series-connected winding strands increases; or operating the circuit in a parallel connection of the two winding strands of a motor phase by selective switching on and off of the first through fourth electronic switches such that the first and third electronic switches and the fourth electronic switch assigned to the first winding strand are switched on and the second electronic switch is turned off, so that the current flows in parallel through the first and third electronic switches, the two winding strands, and then through the fourth electronic switch of the first winding strand.
16. The method according to claim 15, further comprising: when a predetermined speed of the switched reluctance motor is reached, driving of the circuit in parallel connection of the winding strands.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0021] Example embodiments of the disclosure are explained in more detail below with reference to the drawings. Identical or functionally identical components are provided with the same reference signs across the figures.
[0022]
[0023]
[0024]
[0025]
DETAILED DESCRIPTION
[0026]
[0027]
[0028] The diode D5 allows switching between series and parallel connection of the winding strands L1,L2 by the electronic switches Q1,Q2,Q3,Q4.
[0029]
[0030]
[0031] This asymmetrical connection of the two winding strands L1,L2 allows switching between series connection and parallel connection of the winding strands L1,L2 by the electronic switches Q1,Q2,Q3,Q4.
[0032] The winding of a phase of the machine has two or more winding strands arranged symmetrically around the circumference of the stator and wound on protruding poles. The at least two winding strands that make up a phase winding are interconnected as previously described, so that they can be connected in series or in parallel.
[0033] The number of windings of the winding strands can be different. In the context of the disclosure, the winding strands may also be pole winding pairs, in which case the winding strands have an equal number of windings. In this case, the stator pole winding pairs of each pair of opposite stator poles are connected together.
[0034] In general, the electronic switches can be, for example, MOSFET switches or bipolar transistors, especially IGBT switches.
[0035] Switching from series connection to parallel connection is preferred taking place when a nominal speed is exceeded, but this can also be made dependent on the speed gradient or the load. If the winding strands are connected in series, a higher induced flux and thus a higher torque is made possible. With a parallel connection, on the other hand, the inductance is reduced and thus also the induced counter voltage.
[0036] In application areas where a wide speed range and a high starting torque are required, such as in a vehicle drive, in particular motor vehicle drive, the ratio of speed range, starting torque and machine volume can be improved. Furthermore, this also increases efficiency in the lower speed range, which accounts for a double-digit share in motor vehicle driving cycles.
[0037] For high power applications where the electrical switches are doubled to provide the required power, the electrical switches can be used to implement the previously described interconnection of the winding strands without additional switches.
[0038] The symmetrical connection is particularly suitable for systems with high safety requirements, as it offers a high level of redundancy. In the event of failure of one winding strand, the remaining strand can be operated, enabling emergency operation with half the phase power. The asymmetrical connection, on the other hand, is characterized by higher efficiency and low costs, since the additional diode can be dispensed with.
[0039] While example embodiments of the present disclosure have been described above, it is to be understood that variations and modifications will be apparent to those skilled in the art without departing from the scope and spirit of the present disclosure. The scope of the present disclosure, therefore, is to be determined solely by the following claims.